ArXiv TLDR

Uniaxial strain-driven ferroelastic domain control in LaAlO3

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2604.28183

Matthias Roeper, Robin Buschbeck, Jakob Wetzel, Tobias Ritschel, Anna-Lena Hofmann + 13 more

cond-mat.mtrl-scicond-mat.mes-hallphysics.app-ph

TLDR

Researchers demonstrate continuous, reversible control of ferroelastic domains in LaAlO3 using uniaxial strain, enabling new device applications.

Key contributions

  • Demonstrates continuous, reversible manipulation of ferroelastic domains in LaAlO3 using uniaxial strain.
  • Maps the microscopic evolution of twin domain population during strain-driven phase transition.
  • Establishes uniaxial strain as an accessible control parameter for ferroelastic domain engineering.

Why it matters

This work establishes uniaxial strain as a practical method for actively programming domain architectures in LaAlO3. It opens new possibilities for strain-tunable superconducting interfaces, nanoscale phonon-polariton optics, and ultrafast lattice control, advancing functional oxide device engineering.

Original Abstract

Multiferroic domain walls in functional oxides exhibit properties distinct from the bulk and are increasingly exploited as active elements in nanoelectronic and photonic devices. Deterministic control of domain populations has typically remained limited to local control, or removal with temperature. Here we demonstrate continuous, reversible manipulation of the ferroelastic domain structure in single-crystal LaAlO$_3$ using in-situ uniaxial strain. Combining atomic force microscopy, X-ray diffraction, and Raman spectroscopy with first-principles calculations we map the complete microscopic evolution of the twin domain population through the strain-driven transition from the rhombohedral $R\bar{3}c$ ground state toward the predicted orthorhombic $Fmmm$ phase. Applied strains below $0.5\%$ produce pronounced surface flattening and large-scale domain reorganisation, establishing uniaxial strain as a technically accessible control parameter for ferroelastic domain engineering. These results open a route to active, real-time programming of domain architectures in LaAlO$_3$-based heterostructures, with implications for strain-tunable superconducting interfaces, nanoscale phonon-polariton optics, and ultrafast lattice control.

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